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93 related items for PubMed ID: 25416596

  • 1. Modification of glial response in hibernation: a patch-clamp study on glial cells acutely isolated from hibernating land snail.
    Nikolic L, Bataveljic D, Andjus PR, Moldovan I, Nedeljkovic M, Petkovic B.
    J Biol Rhythms; 2014 Dec; 29(6):442-55. PubMed ID: 25416596
    [Abstract] [Full Text] [Related]

  • 2. Down regulation of sodium channels in the central nervous system of hibernating snails.
    Kiss T, Battonyai I, Pirger Z.
    Physiol Behav; 2014 May 28; 131():93-8. PubMed ID: 24769022
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  • 3. Inwardly rectifying potassium channels (Kir) in central nervous system glia: a special role for Kir4.1 in glial functions.
    Butt AM, Kalsi A.
    J Cell Mol Med; 2006 May 28; 10(1):33-44. PubMed ID: 16563220
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  • 4. Mass spectrometric analysis of activity-dependent changes of neuropeptide profile in the snail, Helix pomatia.
    Pirger Z, Lubics A, Reglodi D, Laszlo Z, Mark L, Kiss T.
    Neuropeptides; 2010 Dec 28; 44(6):475-83. PubMed ID: 20716464
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  • 5. Glycolytic adjustments in tissues of frog Rana ridibunda and land snail Helix lucorum during seasonal hibernation.
    Michaelidis B, Kyriakopoulou-Sklavounou P, Staikou A, Papathanasiou I, Konstantinou K.
    Comp Biochem Physiol A Mol Integr Physiol; 2008 Dec 28; 151(4):582-9. PubMed ID: 18691665
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  • 6. Satellite glial cell responses to neuronal firing in the nervous system of Helix pomatia.
    Gommerat I, Gola M.
    J Membr Biol; 1994 Mar 28; 138(3):209-19. PubMed ID: 8006958
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  • 7. The developmental expression of K+ channels in retinal glial cells is associated with a decrease of osmotic cell swelling.
    Wurm A, Pannicke T, Iandiev I, Wiedemann P, Reichenbach A, Bringmann A.
    Glia; 2006 Oct 28; 54(5):411-23. PubMed ID: 16886204
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  • 8. Relationship between glial potassium regulation and axon excitability: a role for glial Kir4.1 channels.
    Bay V, Butt AM.
    Glia; 2012 Apr 28; 60(4):651-60. PubMed ID: 22290828
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  • 9. Neural serotonin receptors in active and hibernating helicid snails (Helix lucorum).
    Sakharov DA, Korobtsov GN.
    Experientia; 1976 May 15; 32(5):588-9. PubMed ID: 1278301
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  • 12. Kir potassium channel subunit expression in retinal glial cells: implications for spatial potassium buffering.
    Kofuji P, Biedermann B, Siddharthan V, Raap M, Iandiev I, Milenkovic I, Thomzig A, Veh RW, Bringmann A, Reichenbach A.
    Glia; 2002 Sep 15; 39(3):292-303. PubMed ID: 12203395
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  • 14. Supercooling ability in two populations of the land snail Helix pomatia (Gastropoda: Helicidae) and ice-nucleating activity of gut bacteria.
    Nicolai A, Vernon P, Lee M, Ansart A, Charrier M.
    Cryobiology; 2005 Feb 15; 50(1):48-57. PubMed ID: 15710369
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  • 15. Proliferative gliosis causes mislocation and inactivation of inwardly rectifying K(+) (Kir) channels in rabbit retinal glial cells.
    Ulbricht E, Pannicke T, Hollborn M, Raap M, Goczalik I, Iandiev I, Härtig W, Uhlmann S, Wiedemann P, Reichenbach A, Bringmann A, Francke M.
    Exp Eye Res; 2008 Feb 15; 86(2):305-13. PubMed ID: 18078934
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  • 16. Single-channel and whole-cell recordings from on-neurone glial cells in Helix pomatia ganglia.
    Gommerat I, Jacquet G, Chagneux H, Gola M.
    J Neurosci Methods; 1993 Nov 15; 50(2):243-51. PubMed ID: 8107504
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  • 17. Changes in the expression and current of the Na+/K+ pump in the snail nervous system after exposure to a static magnetic field.
    Nikolić L, Bataveljić D, Andjus PR, Nedeljković M, Todorović D, Janać B.
    J Exp Biol; 2013 Sep 15; 216(Pt 18):3531-41. PubMed ID: 23788713
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  • 18. Serotonin promotes region-specific glial influences on cultured serotonin and dopamine neurons.
    Liu J, Lauder JM.
    Glia; 1992 Sep 15; 5(4):306-17. PubMed ID: 1350272
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